KnE Life Sciences

ISSN: 2413-0877

The latest conference proceedings on life sciences, medicine and pharmacology.

ROLES OF APOPTOSIS AND AUTOPHAGY ON THE TEXTURE OF RED SEA BREAM MUSCLE

Published date: Feb 01 2015

Journal Title: KnE Life Sciences

Issue title: International Symposium on Aquatic Product Processing (ISAPPROSH) 2013

Pages: 35-38

DOI: 10.18502/kls.v1i0.82

Authors:

Atsuko HarigayaGraduate School of Marine Science and Technology, 4-5-7 Konan, Minato-ku, Tokyo 108-8477

Reiko Nagasakarnagas0@kaiyodai.ac.jpDepartment of Food Science and Technology

Toshiaki OhshimaDepartment of Food Science and Technology

Abstract:

One of commercial brands in farmed-products of red sea bream (Pagrus major), named “Date-Madai”, is known to possess hard texture and transparency when served as “Sashimi”. The quality of “Sashimi” is usually evaluated by texture, appearance, and color of dark muscle. These characters easily change worse during post mortem storage. The aim of this study was to reveal relationship between proteolytic degradation and muscle quality of the red sea bream. Sensory analysis was carried out to evaluate the quality of “Sashimi” in terms of texture and appearance of flesh. Western blot analysis was conducted to evaluate protein expressions of red sea bream muscle. Significantly higher score in the sensory analysis for brightness was given to the “Date-Madai”. Similar tendency were also observed in color, texture and general acceptability. Intracellular effector of the apoptotic pathway includes contributin of caspase family. Lower level in caspase-3 protein was observed in the “Date-Madai” muscle. Autophagy is known to be inhibited by the target of rapamycin (TOR) signaling. Phosphorylated ribosomal protein S6 kinase, which is in the downstream of the TOR, increased in the “Date- Madai” muscle. This study concluded that the apoptosis and autophagy could be associated with the quality of the red sea bream.

Keywords: apoptosis, autophagy, proteases, red sea bream 

References:

Ishida N, Yamashita M, Koizumi N, Terayama M, Ineno T, Minami T. 2003. Inhibition of post-mortem muscle softening following in situ perfusion of protease inhibitors in tilapia. Fish. Sci. 69: 632-638.
Laemmli UK. 1970. Cleavage of structural proteins during the assembly of the head of bacteriophage T4. Nature. 227: 680-685.
Mizushima N, Noda T, Ohsumi Y. 1999. Apg16p is required for the function of the Apg12p-Apg5p conjugate in the yeast autophagy pathway. The EMBO J. 18: 3888-3896.
Noda T, Ohsumi Y. 1998. Tor, a phosphatidylinositol kinase homologue controls autophagy in yeast. J.Biol.Chem. 273: 3963-3966.
Sato K, Sakaguchi M, Bremner HA. 1999 Gaping in fish flesh, Extracellular extracellular matrix of fish and shellfish. Research Signpost. Trivandrum. India: 81-94.
Szegezdi E, Logue SE, Samali A. 2006. Mediators of endoplasmic reticulum stress- induced apoptosis. EMBO rep. 7: 880-885.
Yabu T, Yamashita M, Todoriki S. 2001. Stress-induced apoptosis by heat shock, UV and γ-ray irradiation in zebrafish embryos detected by increased caspase activity and whole-mount TUNEL staining. Fish. Sci. 667 (2) : 333-340.
Yamashita M, Konagaya S. 1991. Hydrolytic action of salmon cathepsins B and L to muscle structural proteins in respect of muscle softening. Nippon Suisan Gakkaishi. 57: 1917-1922.
Yamashita M, Yabu T. 2008. Observation of stress-induced autophagy in fish cells. Bull. Fish. Res. Agen. 26: 23-28.

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